TECHNICAL FIELD
[0001] The present invention relates to an interference prevention control device of a work
machine provided with a cab that is movably mounted on the machine body.
BACKGROUND ART
[0002] With regard to a work machine provided with a cab and a work equipment mounted on
the machine body in such a manner that the cab and the work equipment are capable
of moving independently of each other, conventional cab interference prevention control
for preventing interference between the cab and the work equipment is typically performed
by detecting the distance moved by the cab; adjusting the interference prevention
range based on the result of the detection of the actual distance moved by the cab
in order to prevent interference between the cab and the work equipment; and, based
on the adjusted interference prevention range, limiting movement of the work equipment
(e. g. see Patent Document 1).
Patent Document 1: Japanese Patent No.
3,310,783 (pp 4 and 5, and Figs. 3 to 5)
DISCLOSURE OF THE INVENTION
Problems to be Solved by the Invention
[0003] The interference prevention control described above moves the cab after putting the
work equipment into a stand-by position where the work equipment will not interfere
with the cab, adjusts the interference prevention range after moving the cab, and,
thereafter, moves the work equipment. Therefore, should the cab be moved when the
work equipment is in an intended working position, it may be determined that the cab
will interfere with the work equipment. However, preventing such an occurrence by
putting the work equipment into a stand-by position where the work equipment will
not interfere with the cab each time the cab is moved reduces the work efficiency
of the work machine.
[0004] In order to solve the above problems, an object of the invention is to provide an
interference prevention control device of a work machine, wherein the interference
prevention control device is capable of limiting movement of the cab based on a position
of the tool of the work equipment and thereby preventing interference of the cab with
the tool as well as improving the work efficiency of the work machine.
Means to Solve the Problems
[0005] Claim 1 of the present invention relates to an interference prevention control device
of a work machine provided with a cab and a work equipment mounted on the machine
body in such a manner that the cab and the work equipment are capable of moving independently
of each other, the interference prevention control device including a cab position
sensor, a tool position sensor, a limiting means, and a controller. The cab position
sensor serves to detect a position of the cab. The tool position sensor serves to
detect a position of a tool attached to the work equipment. The limiting means serves
to limit movement of an actuator that operates to move the cab. The controller serves
to determine a positional relationship between the tool and the cab based on the tool
position detected by the tool position sensor as well as the cab position detected
by the cab position sensor; and, based on the positional relationship, control the
movement of the actuator of the cab by means of the limiting means so as to prevent
interference between the cab and the tool.
[0006] According to Claim 2 of the present invention, the actuator that has had its movement
limited by the limiting means of the interference prevention control device of the
work machine according to Claim 1 of the present invention is a hydraulic actuator
that has had its movement controlled by a pilot-operated control valve, and the limiting
means is a solenoid-operated directional control valve disposed in a pilot passage
of the pilot-operated control valve.
[0007] According to Claim 3 of the present invention, the controller of the interference
prevention control device of the work machine according to Claim 2 of the present
invention is adapted to output a signal commanding maximum operation to the solenoid-operated
directional control valve in cases where the controller determines, based on the positional
relationship between the tool and the cab, that movement of the cab by a given amount
will cause no interference of the cab with the tool, and output a command signal corresponding
to the positional relationship in cases where the controller predicts interference.
Effects of the Invention
[0008] According to Claim 1 of the present invention, the controller determines a positional
relationship between the tool of the work equipment and the cab based on a tool position
detected by the tool position sensor as well as a cab position detected by the cab
position sensor; and, based on the positional relationship, controls the movement
of the actuator of the cab by means of the limiting means. As a result, interference
of the cab with the tool of the work equipment can be prevented by limiting the movement
of the cab in accordance with the position of the tool when the cab approaches the
tool. Furthermore, as priority is given to movement of the work equipment while the
cab can be moved as intended within a permissible range, the work efficiency can be
improved.
[0009] According to Claim 2 of the present invention, the limiting means is a solenoid-operated
directional control valve disposed in a pilot passage of a pilot-operated control
valve that serves to control movement of a hydraulic actuator. Therefore, it is possible
to control the movement of the hydraulic actuator with a high degree of accuracy and
thereby reliably prevent interference between the tool of the work equipment and the
cab.
[0010] According to Claim 3 of the present invention, in cases where the controller determines,
based on the positional relationship between the tool and the cab, that movement of
the cab by a given amount will cause no interference of the cab with the tool, the
controller outputs a signal commanding maximum operation to the solenoid-operated
directional control valve, thereby ensuring high-speed operation of the cab with high
work efficiency. In cases where the controller predicts interference, the controller
outputs a command signal corresponding to the positional relationship to the solenoid-operated
directional control valve, thereby reducing the cab speed as the cab approaches the
tool, leading to shock-free, smooth stoppage of the cab.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
Fig. 1 is a control circuit diagram showing an interference prevention control device
of a work machine according to an embodiment of the present invention.
Fig. 2 is a side view of a work machine equipped with the interference prevention
control device.
Fig. 3 is a flow chart showing the details of interference prevention control performed
by a controller of the interference prevention control device.
Fig. 4 is a characteristic diagram showing characteristics of command signals output
from the controller of the interference prevention control device to a solenoid-operated
directional control valve.
REFERENCE NUMERALS
[0012]
- 10
- work machine
- 11
- machine body
- 12
- front work equipment as a work equipment
- 13
- cab
- 28
- tool
- 32
- cab lifting cylinder as an actuator
- 41
- boom angle sensor as a tool position sensor
- 42
- arm angle sensor as a tool position sensor
- 43
- cab position sensor
- 47
- pilot-operated control valve
- 65,66
- secondary pressure passage as a pilot passage
- 75,76
- solenoid-operated directional control valve as a limiting means
- 77
- controller
BEST MODE FOR CARRYING OUT THE INVENTION
[0013] Next, the present invention is explained in detail hereunder, referring to an embodiment
thereof shown in the attached drawings.
[0014] Fig. 2 illustrates a work machine 10. A front work equipment 12 serving as a work
equipment is mounted on the machine body 11 of the work machine 10. At a side of the
front work equipment 12, a cab 13 is mounted on the machine body 11 so as to be capable
of being lifted above and lowered towards the machine body 11. A cab moving device
14 for lifting and lowering the cab 13 is provided between the cab 13 and the machine
body 11. The machine body 11 includes a lower structure 16 equipped with crawler belts
15, and an upper structure 17 rotatably mounted on the lower structure 16.
[0015] The front work equipment 12, which is mounted on the machine body 11 together with
the cab 13, includes a boom 22, the base end of which is pivotally supported at a
swiveling frame 20 of the machine body 11 by a shaft and a boom foot pin 21. A boom
cylinder 23 is provided between the swiveling frame 20 and the boom 22 and serves
as an actuator for vertically pivoting the boom 22. The base end of an arm 25 is pivotally
supported at the distal end of the boom 22 by a shaft and a boom end pin 24. An arm
cylinder 26 is provided between the boom 22 and the arm 25 and serves as an actuator
for pivoting the arm 25. A tool 28 is supported at the distal end of the arm 25 by
a shaft and an arm end pin 27.
[0016] The tool 28 shown in the drawing is a grapple, which is used for demolition or other
similar operations. As the grapple is driven to be opened or closed by a tool actuator
(not shown) so as to grasp or release a workpiece, the diameter of the grapple changes.
Other examples of the tool include a clamshell bucket, a magnet, a fork, and the like.
[0017] The cab moving device 14 includes a link mechanism 31 and a cab lifting cylinder
32. The link mechanism 31 serves to maintain the cab 13 at a prescribed attitude.
The cab lifting cylinder 32 serves as an actuator for lifting or lowering the cab
13.
[0018] The link mechanism 31 includes a support tower body 33, an L-shaped link connecting
portion 34, an upper link 39, and a lower link 40. The support tower body 33 is provided,
in an upright position, on the upper structure 17 of the machine body 11. The link
connecting portion 34 is formed at the lower part of the cab 13 as an integral body
with the cab 13. The upper link 39 and the lower link 40 are disposed between and
pivotally connected to the upper part of the support tower body 33 and the back end
of the link connecting portion 34 by means of pins 35,36,37,38 so that the upper link
39 and the lower link 40 are constantly maintained parallel to each other. The upper
link 39 and the lower link 40 are adapted to be vertically pivoted by the cab lifting
cylinder 32.
[0019] The base end of the cab lifting cylinder 32 is pivotally supported at the lower part
of the support tower body 33 by a shaft and a pin. The cab lifting cylinder 32 has
a piston rod, the distal end of which is pivotally connected to the upper link 39
by a pin.
[0020] As described above, the cab 13 can be lifted or lowered by the cab moving device
14. The front work equipment 12 includes the boom 22, which is attached to the machine
body 11 so as to be capable of pivoting around the boom foot pin 21 by the boom cylinder
23; the arm 25, which is attached to the boom 22 so as to be capable of pivoting around
the boom end pin 24 by the arm cylinder 26; and tool 28, which is attached to the
arm 25 so as to be capable of pivoting around the arm end pin 27.
[0021] A boom angle sensor 41 for detecting an angle of the boom 22 with respect to the
swiveling frame 20 is attached to an end of the boom foot pin 21, and an arm angle
sensor 42 for detecting an angle of the arm 25 with respect to the boom 22 is attached
to an end of the boom end pin 24. The boom angle sensor 41 and the arm angle sensor
42 together serve as a tool position sensor for detecting a position of the tool 28
attached to the front work equipment 12. A cab position sensor 43 for detecting a
position of the cab 13 by detecting an angle of the upper link 39 with respect to
the support tower body 33 is attached to an end of the pin 35. Examples of devices
that can be used as the boom angle sensor 41, the arm angle sensor 42, or the cab
position sensor 43 include a rotary potentiometer.
[0022] Fig. 1 illustrates a control circuit for controlling the cylinders. An operation
unit provided with operation valves 44,45,46 is installed in the cab 13 and adapted
to be operated by an operator seated in the seat. The machine body 11 is provided
with travel motors (not shown in the drawings) mounted on the lower structure 16,
a swivel motor (not shown) for swiveling the upper structure 17 on the lower structure
16, and a pilot-operated control valve 47 for controlling hydraulic actuators, such
as the boom cylinder 23, the arm cylinder 26, and the cab lifting cylinder 32.
[0023] The pilot-operated control valve 47 includes, at least, spools 48,49,50 for controlling
the boom cylinder 23, the arm cylinder 26, and the cab lifting cylinder 32, respectively.
[0024] The spools 48,49,50 have a function of controlling the direction and flow rate of
hydraulic oil fed respectively to the boom cylinder 23, the arm cylinder 26, and the
cab lifting cylinder 32 and returning the return oil into a tank 53. To be more specific,
when a motor 51, which may be an on-vehicle engine, drives a main pump 52 so that
the hydraulic oil is fed from the tank 53 to the spools 48,49,50 through a main passage
54, each spool 48,49,50 controls, based on its stroke position, the direction and
flow rate of the hydraulic oil fed therefrom to the corresponding actuator, i.e. the
boom cylinder 23, the arm cylinder 26, or the cab lifting cylinder 32, and returns
the return oil into the tank 53.
[0025] A pilot pump 55 is provided and driven together with the main pump 52 by the motor
51. The pilot pump 55 serves to feed pressurized pilot oil at a pilot primary pressure,
which is set at a relief valve 56, to the operation valves 44,45,46 through a primary
pressure passage 58 provided with a check valve 57. The operation valves 44,45,46
feed pilot secondary pressures to pilot operation units of the respective spools 48,49,50
through secondary pressure passages 61,62,63,64,65,66, which serve as pilot passages.
The amounts of pilot secondary pressures respectively correspond to the degrees of
operation of the levers.
[0026] Solenoid-operated directional control valves 75,76 serving as a limiting means are
disposed in the secondary pressure passages 65,66 to the cab. These solenoid-operated
directional control valves 75,76 are provided with solenoids, which are connected
to an output section of a controller 77. The aforementioned boom angle sensor 41,
arm angle sensor 42, and cab position sensor 43, as well as a switch 78 for initiating
interference prevention control, are connected to an input section of the controller
77.
[0027] Based on the position of the cab 13 detected by the cab position sensor 43 (the position
of the cab 13 hereinafter means the position of a cab interference area 80 set around
the cab 13) and the position of the tool 28 detected by the boom angle sensor 41 and
the arm angle sensor 42, the controller 77 determines the positional relationship
between the tool 28 and the cab 13, and, based on the positional relationship, controls
the movement of the actuator of the cab 13 through the solenoid-operated directional
control valves 75,76 so as to prevent interference between the cab 13 and the tool
28.
[0028] Next, interference prevention control performed by the controller 77 is explained
hereunder, referring to the flow chart illustrated in Fig. 3, wherein numerals enclosed
with circles represent step numbers showing control procedures.
(Step 1)
[0029] The boom angle and the arm angle are detected by means of the boom angle sensor 41
and the arm angle sensor 42, and the coordinates of the distal end of the arm, i.e.
the position of the tool 28, are determined based on the boom angle and the arm angle
as well as the boom length and the arm length, which are already known.
(Step 2)
[0030] The position of the cab 13, in other words the position of the cab interference area
80, is determined by detecting the angle of the link mechanism 31 by means of the
cab position sensor 43.
(Step 3)
[0031] The positional relationship between the tool position and the cab position is determined.
(Step 4)
[0032] Whether or not there is a cab lifting command is determined. If there is no cab lifting
command, the process proceeds to Step 8.
(Step 5)
[0033] If a cab lifting command is ascertained, whether or not a given amount of cab lifting
movement, in other words moving the cab upward by a given angle, will cause interference
of the computed position 80a of the cab interference area 80 with the position of
the tool 28 is determined.
(Step 6)
[0034] If it is ascertained that the cab lifting movement by the given angle will not cause
the computed position 80a of the cab interference area 80 to interfere with the position
of the tool 28, a signal commanding maximum operation is output to the solenoid-operated
directional control valve 76 for cab lifting operation so that the solenoid-operated
directional control valve 76 is controlled to be in a fully open state. As a result,
it is ensured that the cab can be lifted at a speed corresponding to the degree of
operation of the operation valve 46, because the cab lifting pilot secondary pressure
from the operation valve 46 is not limited.
(Step 7)
[0035] If it is ascertained that the cab lifting movement by the given angle will cause
the computed position 80a of the cab interference area 80 to interfere with the position
of the tool 28, a command signal corresponding to the remaining angle from the position
of the tool 28 to the cab interference area 80 is output to the solenoid-operated
directional control valve 76 for cab lifting operation. As a result, even if the cab
lifting pilot secondary pressure has been generated in the amount corresponding to
the degree of operation of the operation valve 46, the commanding signal output from
the controller 77 to the solenoid-operated directional control valve 76 is gradually
reduced in proportion to the decrease in the remaining angle as illustrated in Fig.
4 so that the cab lifting pilot secondary pressure is gradually reduced, ultimately
to zero, by means of the solenoid-operated directional control valve 76, regardless
of the degree of operation of the operation valve 46.
(Step 8)
[0036] Whether or not there is a cab lowering command is determined. If there is no cab
lowering command, the process proceeds to Step 12.
(Step 9)
[0037] If a cab lowering command is ascertained, whether or not cab lowering movement by
a given angle will cause interference of the computed position 80a of the cab interference
area 80 with the position of the tool 28 is determined.
(Step 10)
[0038] If it is ascertained that the cab lowering movement by the given angle will not cause
the computed position 80a of the cab interference area 80 to interfere with the position
of the tool 28, a signal commanding maximum operation is output to the solenoid-operated
directional control valve 75 for cab lowering operation so that the solenoid-operated
directional control valve 75 is controlled to be in a fully open state. As a result,
it is ensured that the cab can be lowered at a speed corresponding to the degree of
operation of the operation valve 46, because the cab lowering pilot secondary pressure
from the operation valve 46 is not limited.
(Step 11)
[0039] If it is ascertained that the cab lowering movement by the given angle will cause
the computed position 80a of the cab interference area 80 to interfere with the position
of the tool 28, a command signal corresponding to the remaining angle from the position
of the tool 28 to the cab interference area 80 is output to the solenoid-operated
directional control valve 75 for cab lowering operation. As a result, even if the
cab lowering pilot secondary pressure has been generated in the amount corresponding
to the degree of operation of the operation valve 46, the commanding signal output
from the controller 77 to the solenoid-operated directional control valve 75 is gradually
reduced in proportion to the decrease in the remaining angle as illustrated in Fig.
4 so that the cab lowering pilot secondary pressure is gradually reduced, ultimately
to zero, by means of the solenoid-operated directional control valve 75, regardless
of the degree of operation of the operation valve 46.
(Step 12)
[0040] Whether or not the interference prevention control has been terminated is determined
by ascertaining whether the switch 78 is on or off. Throughout the period when interference
prevention control continues, the process keeps returning to Step 1.
[0041] As described above, according to the example of a control method illustrated in
Fig. 3, the controller 77 always grasps the cab position detected by the cab position
sensor 43 attached to the cab moving device 14, as well as the tool position that
is computed based on the attitude of the front work equipment detected by the boom
angle sensor 41 and the arm angle sensor 42, which are respectively attached to joints
of the front work equipment 12. The controller 77 performs cab interference prevention
control by thus monitoring the positional relationship between the cab 13 and the
tool 28 constantly so that whenever the cab 13 being moved approaches the tool 28,
the controller 77 commands the solenoid-operated directional control valves 75,76
to limit output to the cab lifting cylinder 32 of the cab moving device 14, which
is in the process of moving the cab 13.
[0042] Next, functions and effects of the embodiment described above are explained.
[0043] According to the interference prevention control illustrated in Figs. 1 to 3, the
position of the tool 28 of the front work equipment 12 is detected by the boom angle
sensor 41 and the arm angle sensor 42, which together serve as the tool position sensor,
and the position of the cab interference area 80 is detected by the cab position sensor
43 attached to the cab moving device 14. Then, the controller 77 determines the positional
relationship between the tool 28 and the cab 13 based on the detected positions of
the tool 28 and the cab interference area 80; and, based on the positional relationship,
controls the solenoid-operated directional control valves 75,76 so as to limit the
movement of the cab lifting cylinder 32, which is an actuator of the cab 13, independently
of operation by the operator. As a result, interference of the cab 13 with the tool
28 of the front work equipment 12 can be prevented by limiting the movement of the
cab 13 in accordance with the position of the tool 28 when the cab 13 approaches the
tool 28. Furthermore, as the interference prevention control according to the invention
gives priority to movement of the front work equipment 12 while enabling the cab 13
to be moved as intended within a permissible range, the work efficiency can be improved.
[0044] In the control circuit illustrated in Fig. 1, the limiting means is composed of the
solenoid-operated directional control valves 75,76 disposed in the secondary pressure
passages 65,66 connected in fluid communication with the pilot operation unit of the
spool 50 of the pilot-operated control valve 47, which controls movement of the cab
lifting cylinder 32. Therefore, the control circuit is capable of controlling the
movement of the hydraulic actuators with a high degree of accuracy and thereby reliably
preventing interference between the tool 28 of the front work equipment 12 and the
cab 13.
[0045] As illustrated in Fig. 4, in cases where the controller 77 determines that no interference
will occur between the tool 28 of the front work equipment 12 and the cab 13, even
if the boom, the arm or the cab is moved by the given amount, i.e. by the given angle,
in other words, in cases where the remaining angle is large, the controller 77 outputs
a signal commanding maximum operation to the appropriate one of the solenoid-operated
directional control valves 75,76, thereby ensuring high-speed operation with high
work efficiency. In cases where the controller 77 predicts interference, in other
words in cases where the remaining angle is small, the controller 77 outputs a command
signal corresponding to the positional relationship between the tool 28 and the cab
13 to the solenoid-operated directional control valve 75 or 76, thereby reducing the
operation speed as the tool 28 and the cab 13 approach each other, leading to shock-free,
smooth stoppage.
INDUSTRIAL APPLICABILITY
[0046] The present invention is applicable to a work machine equipped with a movable cab.